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Human Fetal Liver: An In Vitro Model of Erythropoiesis

We previously described the large-scale production of RBCs from hematopoietic stem cells (HSCs) of diverse sources. Our present efforts are focused to produce RBCs thanks to an unlimited source of stem cells. Human embryonic stem (ES) cells or induced pluripotent stem cell (iPS) are the natural cand...

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Autores principales: Pourcher, Guillaume, Mazurier, Christelle, King, Yé Yong, Giarratana, Marie-Catherine, Kobari, Ladan, Boehm, Daniela, Douay, Luc, Lapillonne, Hélène
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE-Hindawi Access to Research 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3179878/
https://www.ncbi.nlm.nih.gov/pubmed/21961016
http://dx.doi.org/10.4061/2011/405429
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author Pourcher, Guillaume
Mazurier, Christelle
King, Yé Yong
Giarratana, Marie-Catherine
Kobari, Ladan
Boehm, Daniela
Douay, Luc
Lapillonne, Hélène
author_facet Pourcher, Guillaume
Mazurier, Christelle
King, Yé Yong
Giarratana, Marie-Catherine
Kobari, Ladan
Boehm, Daniela
Douay, Luc
Lapillonne, Hélène
author_sort Pourcher, Guillaume
collection PubMed
description We previously described the large-scale production of RBCs from hematopoietic stem cells (HSCs) of diverse sources. Our present efforts are focused to produce RBCs thanks to an unlimited source of stem cells. Human embryonic stem (ES) cells or induced pluripotent stem cell (iPS) are the natural candidates. Even if the proof of RBCs production from these sources has been done, their amplification ability is to date not sufficient for a transfusion application. In this work, our protocol of RBC production was applied to HSC isolated from fetal liver (FL) as an intermediate source between embryonic and adult stem cells. We studied the erythroid potential of FL-derived CD34(+) cells. In this in vitro model, maturation that is enucleation reaches a lower level compared to adult sources as observed for embryonic or iP, but, interestingly, they (i) displayed a dramatic in vitro expansion (100-fold more when compared to CB CD34(+)) and (ii) 100% cloning efficiency in hematopoietic progenitor assays after 3 days of erythroid induction, as compared to 10–15% cloning efficiency for adult CD34(+) cells. This work supports the idea that FL remains a model of study and is not a candidate for ex vivo RBCS production for blood transfusion as a direct source of stem cells but could be helpful to understand and enhance proliferation abilities for primitive cells such as ES cells or iPS.
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spelling pubmed-31798782011-09-29 Human Fetal Liver: An In Vitro Model of Erythropoiesis Pourcher, Guillaume Mazurier, Christelle King, Yé Yong Giarratana, Marie-Catherine Kobari, Ladan Boehm, Daniela Douay, Luc Lapillonne, Hélène Stem Cells Int Research Article We previously described the large-scale production of RBCs from hematopoietic stem cells (HSCs) of diverse sources. Our present efforts are focused to produce RBCs thanks to an unlimited source of stem cells. Human embryonic stem (ES) cells or induced pluripotent stem cell (iPS) are the natural candidates. Even if the proof of RBCs production from these sources has been done, their amplification ability is to date not sufficient for a transfusion application. In this work, our protocol of RBC production was applied to HSC isolated from fetal liver (FL) as an intermediate source between embryonic and adult stem cells. We studied the erythroid potential of FL-derived CD34(+) cells. In this in vitro model, maturation that is enucleation reaches a lower level compared to adult sources as observed for embryonic or iP, but, interestingly, they (i) displayed a dramatic in vitro expansion (100-fold more when compared to CB CD34(+)) and (ii) 100% cloning efficiency in hematopoietic progenitor assays after 3 days of erythroid induction, as compared to 10–15% cloning efficiency for adult CD34(+) cells. This work supports the idea that FL remains a model of study and is not a candidate for ex vivo RBCS production for blood transfusion as a direct source of stem cells but could be helpful to understand and enhance proliferation abilities for primitive cells such as ES cells or iPS. SAGE-Hindawi Access to Research 2011 2011-09-22 /pmc/articles/PMC3179878/ /pubmed/21961016 http://dx.doi.org/10.4061/2011/405429 Text en Copyright © 2011 Guillaume Pourcher et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Pourcher, Guillaume
Mazurier, Christelle
King, Yé Yong
Giarratana, Marie-Catherine
Kobari, Ladan
Boehm, Daniela
Douay, Luc
Lapillonne, Hélène
Human Fetal Liver: An In Vitro Model of Erythropoiesis
title Human Fetal Liver: An In Vitro Model of Erythropoiesis
title_full Human Fetal Liver: An In Vitro Model of Erythropoiesis
title_fullStr Human Fetal Liver: An In Vitro Model of Erythropoiesis
title_full_unstemmed Human Fetal Liver: An In Vitro Model of Erythropoiesis
title_short Human Fetal Liver: An In Vitro Model of Erythropoiesis
title_sort human fetal liver: an in vitro model of erythropoiesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3179878/
https://www.ncbi.nlm.nih.gov/pubmed/21961016
http://dx.doi.org/10.4061/2011/405429
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